Thursday, October 17, 2019
The Tin Drum Term Paper Example | Topics and Well Written Essays - 750 words
The Tin Drum - Term Paper Example This shows Alfred a Nazi character, but it also shows that he is weak, under the influence of his wife, and not an absolutely fanatical Nazi. Hitler and Beethoven represent the cultural tensions in the family which in turn result in the young Oskarââ¬â¢s somewhat confused understanding of the power struggles that are going on. Oskar describes Alfredââ¬â¢s fondness for the visual image that the Nazi uniform presents, but the description also shows how uncomfortable it was to wear, since the strap of the cap ââ¬Å"scraped his chinâ⬠(p. 116) and he had to get wet in the rain because he refused to use an umbrella. (p. 116) Alfred goes out to Sunday demonstrations but apart from that, there is very little change in his activities, since he still cooks, and washes up in the home as he did before. Section b. As far as we can tell from Oskarââ¬â¢s rather biased narrative, Alfred did not really have much of a career as a Nazi Party member. Oskar describes his motivation for jo ining the party as a natural tendency to conform to his surroundings: ââ¬Å"he always had to wave when other people were waving, to shout, laugh and clap when other people were shouting, laughing and clapping.â⬠(p. 152) His membership is described as ââ¬Å"quite unnecessary, brought no benefits, and just wasted his Sunday morningsâ⬠(p. 152) and so it is obvious that Oskar trivializes and mocks Alfredââ¬â¢s status there. Even when Oskar mentions Alfredââ¬â¢s promotion, he does it in an off-hand manner: ââ¬Å" Like all unusual happenings, his promotion was the occasion for a family skat game.â⬠(p. 115) This is echoed later in connection with a drinking session when Alfred is grieving over the death of Agnes beneath the portrait of the Fuhrer: ââ¬Å"the teetotaling Fuhrer was silent, because Matzerath, a drunken little unit leader, was unworthy of Providenceâ⬠(p. 185). These disparaging comments show that Matzerath filled a very low rank and was of ver y little importance in the Nazi regime. Section c. The Nazi rally on a summer day in 1935 was a planned set piece which was intended to whip up support from the faithful. The way that Oskar describes it, however, subverts the intentions of the stage and the rows of flag bearing people. It is set up so that people go to a rostrum to look up in awe at the spectacle before them. Everything is regimented in straight lines, and yet the advice of Mr Bebra urges Oscar to be aware of the hidden mechanisms of power that operates during these rallies: ââ¬Å"Always take care to be sitting on the rostrum and never to be standing out in front of it.â⬠(p. 114) Oskar views the rostrum from behind it, which shows the mechanisms which orchestrate the event, or from underneath, where he can disrupt it without being seen. Dramatic displays like ââ¬Å"torchlight processions and parades past rostrumsâ⬠(p. 115) may look impressive from the perspective of a spectator, but the depiction in Th e Tin Drum suggests that the whole thing is a sham, and that it is better either to be fully in favour of it, and on the rostrum, or to utterly oppose it. Going with the flow, like Matzerath, is seen to be the worst option. Section d. There is a lot of symbolism in Oskarââ¬â¢s account of the death of Alfred Matzerath. Clearly the party membership pin that
Wednesday, October 16, 2019
Charater in education Essay Example | Topics and Well Written Essays - 500 words
Charater in education - Essay Example Character education is mainly based on two premises. The first premise is that virtues are objectively the good human qualities and are good for humans whether they know them or not. Virtues have a claim on humanââ¬â¢s personal as well as collective conscience. Basically, they are affirmed by religions and cultures around the world. In simpler terms, virtues express the common humanity of human beings. They transcend time and culture. Unselfishness, pursuit of truth, diligence, wisdom, perseverance and patience has always and will remain to be virtues, irrespective of the number of people practicing them (Lickona, 2004). Humans form beliefs that make it more likely for them to act virtuously in future. Beliefs are not only the mental states worth mentioning, but emotions and desires are also equally important for virtuous behavior. Just having a belief, for example to stop gossiping can leave somebody indifferent to actually behave in that way if he or she does not also care about these things. Therefore, for humans to become virtuous they have to form appropriate beliefs and cultivate the right emotions and desires. Right emotions and desires are the components that play a central role in having virtuous people (YouTube video, 2007). The very first set of beliefs basically has to do with the character of other people. However, people also beliefs about themselves such as believing that they are honest, they care about other people, and their spouses think that they care for other people or other people do not see them as lazy. The first two sets of beliefs are mainly about peopleââ¬â¢s own virtuous character. Labeling themselves in this way can have an effect on their virtuous behavior since they want to live up to how they believe in themselves to be moral people. On the other hand, the third and the fourth beliefs have to do with
The Tin Drum Term Paper Example | Topics and Well Written Essays - 750 words
The Tin Drum - Term Paper Example This shows Alfred a Nazi character, but it also shows that he is weak, under the influence of his wife, and not an absolutely fanatical Nazi. Hitler and Beethoven represent the cultural tensions in the family which in turn result in the young Oskarââ¬â¢s somewhat confused understanding of the power struggles that are going on. Oskar describes Alfredââ¬â¢s fondness for the visual image that the Nazi uniform presents, but the description also shows how uncomfortable it was to wear, since the strap of the cap ââ¬Å"scraped his chinâ⬠(p. 116) and he had to get wet in the rain because he refused to use an umbrella. (p. 116) Alfred goes out to Sunday demonstrations but apart from that, there is very little change in his activities, since he still cooks, and washes up in the home as he did before. Section b. As far as we can tell from Oskarââ¬â¢s rather biased narrative, Alfred did not really have much of a career as a Nazi Party member. Oskar describes his motivation for jo ining the party as a natural tendency to conform to his surroundings: ââ¬Å"he always had to wave when other people were waving, to shout, laugh and clap when other people were shouting, laughing and clapping.â⬠(p. 152) His membership is described as ââ¬Å"quite unnecessary, brought no benefits, and just wasted his Sunday morningsâ⬠(p. 152) and so it is obvious that Oskar trivializes and mocks Alfredââ¬â¢s status there. Even when Oskar mentions Alfredââ¬â¢s promotion, he does it in an off-hand manner: ââ¬Å" Like all unusual happenings, his promotion was the occasion for a family skat game.â⬠(p. 115) This is echoed later in connection with a drinking session when Alfred is grieving over the death of Agnes beneath the portrait of the Fuhrer: ââ¬Å"the teetotaling Fuhrer was silent, because Matzerath, a drunken little unit leader, was unworthy of Providenceâ⬠(p. 185). These disparaging comments show that Matzerath filled a very low rank and was of ver y little importance in the Nazi regime. Section c. The Nazi rally on a summer day in 1935 was a planned set piece which was intended to whip up support from the faithful. The way that Oskar describes it, however, subverts the intentions of the stage and the rows of flag bearing people. It is set up so that people go to a rostrum to look up in awe at the spectacle before them. Everything is regimented in straight lines, and yet the advice of Mr Bebra urges Oscar to be aware of the hidden mechanisms of power that operates during these rallies: ââ¬Å"Always take care to be sitting on the rostrum and never to be standing out in front of it.â⬠(p. 114) Oskar views the rostrum from behind it, which shows the mechanisms which orchestrate the event, or from underneath, where he can disrupt it without being seen. Dramatic displays like ââ¬Å"torchlight processions and parades past rostrumsâ⬠(p. 115) may look impressive from the perspective of a spectator, but the depiction in Th e Tin Drum suggests that the whole thing is a sham, and that it is better either to be fully in favour of it, and on the rostrum, or to utterly oppose it. Going with the flow, like Matzerath, is seen to be the worst option. Section d. There is a lot of symbolism in Oskarââ¬â¢s account of the death of Alfred Matzerath. Clearly the party membership pin that
Tuesday, October 15, 2019
Technology Solutions for Human Services Essay Example for Free
Technology Solutions for Human Services Essay There are numerous barriers in every aspect of human service; they vary as much as the clients themselves. These barriers can come in many areas of human service like services, planning, funding, or empowerment. Every human service agent needs to look at each barrier as a personal challenge. This will help the agent find an application that could overcome the barriers. Three main barriers are technology, perceived differences, actual differences, and finances. There are numerous types of barriers that also can be the solution such is the case with technology. If an agency is behind the times their equipment may be slow, not efficient, and not work properly. This can cause loss of information, irritation, or cause client frustrations. ââ¬Å"As resource-strapped human services agencies face countercyclical demand, leaders are exploring emerging technology applications to improve efficiency and capacity. They know they must serve increasingly connected customers who expect immediate, convenient access. They recognize that the implementation of the Affordable Care Act (ACA) has provided additional resources that, if deployed strategically, can enhance modernization. They know too that they must drive coordination and collaboration to truly integrate human services delivery. Despite these imperatives, technology decisions in human services can be overwhelming. Itââ¬â¢s easy to get bogged down in a swirl of concerns ââ¬â from financing and infrastructure to security and compliance. But in planning an IT agenda, human services agencies should specifically focus on four opportunity areas where the fish are swarming ââ¬â and all else will followâ⬠(Swaminathan, 2012). The solution could be updating it, but this can cause other barriers like finances, maintaining equipment, parts, accessories needed to make technology work, staff training, staff rejection, resistance, human errors while learning, and the issues of incorporating new techniques. Sometimes it is just adding a small program that can increase accessibility to tools that can make an organization run smoother. Like adding a Microsoft suite package r office package that would cost a smaller amount then rewriting entire programs, but would assist with tools like excel, word, Powerpoint, or adding something like a camera and a free chat service like Skype. â⬠Everyone would like to do more with less. Regardless of the service an agency provides, every organization is looking for faster and more efficient ways to provide that service. In many ways, technological advancements have allowed organizations to increase productivity; however, in human service organizations, technology can impede organizational effectivenessâ⬠(Goliday, 2013). Issues in technology can have compounded issues like causing communication problems and service issues as well. So when considering technology an agency needs to realize how much technology can be a barrier if not used correctly. Another barrier can be the infusion of cultures and ethnic backgrounds. Some of the barriers created by this can affect different aspects of both the client and the agent. It can touch services, planning, funding, and empowerment. There can be a different set of beliefs, practices, language skills, communication, and translation issues. There also can be barriers in health beliefs, attitudes, time orientation, and concepts of achievement (Scheppersa, Dongenb, Dekkerc, Geertzend, Dekkere, 2006). ââ¬Å"Everyone has a basic right to health care. This is a principle that all people should share and all nations should strive for. Achieving this goal means working to break down the barriers that prevent people from getting the care they need. Sometimes those barriers have to do with resources, when people canââ¬â¢t afford the treatments they need. Sometime those barriers have to do with geography, for example when people live in rural areas with little access to health care providers. And sometimes those barriers have to do simply with who people are ââ¬â and thatââ¬â¢s what weââ¬â¢re here to talk about todayâ⬠(Sebelius, 2012). The barriers can extend into areas of respect, hand gestures, and word meaning. Some barriers that come with ethnic and culture groups are values concerning health, illness, perceptions, knowledge of physiology, knowledge of disease, religious practices, personal resources, immigration rules, income/financial means, health insurance, knowledge of services available, perception, health practices, traditional, and self-treatment (Scheppersa, Dongenb, Dekkerc, Geertzend, Dekkere, 2006). Any of these or any combination can cause barriers for the client and the agent. The way to work with these would be raising awareness, educating, learning, and remember that no one view is right. ââ¬Å"The barriers are all tied to the particular situation of the individual patient and subject to constant adjustment. In other words, generalizations should not be madeâ⬠(Scheppersa, Dongenb, Dekkerc, Geertzend, Dekkere, 2006, Pp. 325-348). These barriers can cause all sorts of new barriers like emotional distancing, client may become removed, depression, fear, communication may break down, and loss of empowerment. This leads to barriers of perceived differences and orientations. Overcoming perceptions can be a huge barrier to health services. An agentââ¬â¢s own beliefs and opinions kind of need to take a backseat to the needs of his or her client. This can sometimes be harder than almost any other barrier because an individual always wants to share his or her opinions. An agent needs to set aside beliefs on age, sexual preference, mental status, criminal activity, and sometimes their opinion on almost every topic, view, opinion, and stereotype because to help a client those personal barriers cannot exist. Another barrier is finances with the economy and all the budget cuts, it makes an agentââ¬â¢s job all the harder. They have to struggle with service cuts and older equipment to help their clients and their clients suffer because of the lack of funds. Agents need to use the tools they have available to find the things he or she needs like using the Internet to find resources or free tools to help out his or her clients and agency. Barriers can overwhelm a person completely and block his or her way, but agents need to remember the struggle is for the people he or she is helping. Some barriers affect small areas and some large. There are barriers that the solution itself creates other barriers. As an agent faces these personal challenges, he or she needs to focus on the needs of his or her clients. As they struggle over each barrier, they need to know that one barrier can lead to another, but there are solutions available they just need to be found.
Monday, October 14, 2019
Force Plate Design And Use Health And Social Care Essay
Force Plate Design And Use Health And Social Care Essay Force plates are a powerful tool for examining the kinetic characteristics of an athletes movement. The plates offer a large variety of information about the external forces involved, but have very specific characteristics that define the potential quality of collected data. Through proper understanding of these qualities, and sound use of calibration, filtering, and sampling procedures, the user can ensure that the error disguising the signal of interest is minimized. Thus, the collected data is at its highest possible quality, and inference about the athlete in question is strongest. This paper deals with the aforementioned topics related to force plate design and use, including a section describing an example laboratory set-up. Keywords: force plate, filtering, sampling, data collection, kinetic Introduction Force is the entity that results in movement- it can be understood as a push, or pull, or simply, a tendency to distort a material. Measurement of force can allow a coach or sport scientist to quantitatively understand an athletes execution of a skill, or to assess an athletes physical progress. For example, assessment of the external forces applied to the ground by an athlete in a vertical jump provide a very good picture of the explosive abilities of an athlete, as well a very good indicator of the progress of those abilities if measured at multiple time points in a training program. Force plates and other force measurement devices are widely used to assess the external forces generated by athletes. Force plates in particular measure external ground reaction forces in up to three planes -vertical, anterior-posterior, and medial lateral. This data provides a picture of the interaction within an athlete-ground system, something extremely difficult to do without a force plate. It is important to distinguish between kinetic and kinematic analysis. Kinematics is related to movement, what is visually observable, e.g. positions velocities and directions, while kinetics refers to what causes the movement to occur (i.e. torques and forces), and is not directly observable. Force plates allow one to see the kinetic characteristics of a skill, and thus the forces that cause the precise execution of that skill. Force Plate Design and Use Force plates measure external forces based on the principles of Newtons third law- that an object exerting a force on another object has a simultaneous force exerted upon it that is equal in magnitude and opposite in direction to the original force exerted. Thus, the force plate measures ground reaction force (GRF). GRF is the force the ground exerts as a reaction (equal, opposite, and simultaneous) to the forces applied to the ground or other object by the athletes body (see Figure 1). This principle allows the researcher to determine the forces exerted by an athlete while in contact with the force plate. In a vertical jump for example, the athletes body mass and propulsion forces from the jump exert a push on the plate, causing a tendency of the plate to distort. This tendency is measured as GRF. The kinetic information obtained from force plate data then provides an understanding of the kinematic characteristics through a derivation of Newtons second law that the force on a body is directly proportional to the mass of the body and the acceleration of the body, represented by the equation force = mass X acceleration. Given that the forces can be measured by a force plate, and the mass of the athlete is known, a very good understanding of the kinematic characteristics of the skill can be obtained through calculation of the acceleration of the athlete using the aforementioned equation. Five important pieces of information can be obtained from a modern full featured force plate: force in the X, Y, and Z directions, the center of pressure, and moment (torque) around each of the axes. Each of these variables shows a picture of the forces exerted by an object (i.e. a limb) on the force plate. This data allows the investigator to determine a multitude of measures. For example, force plates have been used to study the take-off forces in pole vault technique (3) and the forces involved in the second pull in weightlifters (7); as it stands, the uses for force plates are numerous. Before analysis and use of the collected data, processing of the analog signal must occur. Figure 2 shows the complete flow of the force plate data, from the initial analog signal output (continuous voltage) from the force plate, to the final digital input signal leading into the final analysis. Force is applied to the force plate, which changes the excitation charge sent through the force plate in proportion to the force applied. That new charge is sent to an amplifier. Analog signal processing (some kind of filtering or smoothing of the signal) can occur. After the signal has been amplified, the current goes to a data acquisition device, where it enters an analog-digital converter which converts the continuous analog signal to a discrete digital signal. The newly-converted digital data is recorded as evenly spaced samples, and more processing of the digital signal can occur. It is at this point that the recorded digital signal can be analyzed. Load Cells Forces must be measured through indirect means, through a force transducer. A force transducer functions toconvert physical states into electrical signals (21). The load cells in a force plate transduce the force applied to the plate into a measureable electrical voltage and current. There are a variety of load cell types. Two commonly used load cells in force plates are piezoelectric transducers and strain-gauge load cells. Both types of load cells receive an excitation voltage input, and output an different electrical current which is proportional to the load experienced by the cell (based on Ohms Law: current = voltage / resistance) (1). The operation of each differs in a few distinct ways. Piezoelectric cells operate based on the fact that when a piezoelectric material has a force applied to it, a charge appears on the face of the material; This charge is proportional to the force applied. Recording of the resultant voltage allows calculation of the applied force. The strain gauge load cells operate on the fact that changes in electrical current occur when a metal or semiconductor is deformed (1, 19). A thin sheet of metal or semiconductor material is bonded to a metal object, which provides a solid structural device on which to apply the force. Deformations in the device and the bonded sheet result in changes of the electrical resistance of the bonded sheet, thus modifying the current that moves through the bonded sheet. Monitoring of these changes allow for calculation of the force applied to the device. A common form of the strain gauge is the shear beam load cell (1, 19). One end of the beam is anchored to a stable platform, while the other is extended so that it can receive a load. A foil sheet or semiconductor is bonded to the beam, and an electrical current is run through the sheet. Force applied at the end of the beam (perpendicular to the plane of the sheet) causes deformation of the beam, resulting in electrical resistance changes across the sheet bonded to the beam. This results in a different electrical current and allows measurement of the applied force. Shear beam load cells have the advantage of a high force capacity and accurate measurement, which can make them a good candidate for use in force plates. A typical tri-planar force plate is constructed with four three-component load cells (14). Each three-component cell measures force in the X, Y and Z direction, and the placement of the load cells allow for calculation of center of pressure, center of force and torque about the axes. The four load cells are arranged in each of the four quadrants of the force plate, evenly spaced from each other and from the edges. Moment about the axes, center of pressure and center of force can be calculated based from measurements from data from individual load cells and their respective locations on the forceplate. Typically, the forces that are transduced from force plates are summed from measurements from individual force transducers on the plate. For example, in a force plate with four load cells, one in each corner, vertical ground reaction force is calculated from the sum of the forces measured on each cell. Likewise, in a force plate that is capable of anterior-posterior measurement or medial-lateral forces, the forces of interest are the summed composed of the total of the load cells of the plate. Sampling Monitoring the changes in force applied to the force plate requires sampling at regular intervals. Sampling frequencies of 500 to 2000 hertz (Hz) have been noted in the more recent sport science literature, however a sampling frequency of 1000 Hz is perhaps most common (14). While substantial research has examined sampling frequency in a wide variety of applications (engineering, for example), substantially less has been done to examine sampling frequency in sport science, although several authors have evaluated the variability of vertical jump performance data with different sampling frequencies. Vanrenterghem, et al. (24) found that sampling frequencies of above 100 Hz were adequate and Hori, et al. (10) found that sampling at about 200 Hz was accurate enough for accurate measurement. Contrary to the previous authors, Street, et al. (23) found that sampling rates of less than 1080 Hz could lead to an underestimation of jump height (calculated via the impulse method) by up to 4.4%. Other authors have recommended a sampling frequency of 500 Hz or 1000 Hz in force plate research to ensure accuracy, especially when impact is involved (2). Sampling frequencies must be high enough to ensure accuracy of measurement and reduction of signal aliasing (where the recorded digital signal fails to accurately show the original signal due to inadequate sampling). The Nyquist Theorum suggests that the absolute minimum sampling frequency is two times the frequency of interest. Bartlett (2) recommends a sampling frequency of at least 500 Hz, however 1000 Hz is a common choice for force plate capture of human motion (14). High sampling frequency is especially important when creating force-time curves in the early time segments of the curve. For example, some performance monitoring testing evaluates forces applied in the first 50ms of application of force in the isometric mid-thigh pull (12). At a sampling frequency of only 200 ms, if one were to construct a force-time curve, only 11 data points could be used for constructing this 50ms long curve. While a polynomial function could be applied to the 11 data points, a greater degree of accuracy for the curve will be obtained with a frequency of 500 Hz or 1000 Hz, because there would be 26 and 51 data points, respectively, from which to construct a curve. Signal Amplification and Conditioning Data collected from the force plate is not useable until amplification and signal processing occurs. Typically, analog signals (the raw voltage values) from the force plate are amplified and sent to an analog to digital (AD) converter (14). The AD converter then converts the analog voltage signal into a scaled digital signal, a signal that is able to be processed by computer software. Custom software developed in programs like LabVIEWTM (National Instruments, Austin, TX, USA) or Matlab (Mathworks Incorporated, Natick, MA, USA) can perform signal processing to clean up some of the noise from the data for use. Other methods exist for smoothing data that can be done in spreadsheet software such as Microsoft ExcelTM (Microsoft Corporation, Redmond, WA, USA). Many force plates come with proprietary software with filtering and smoothing methods included. Through the collection process, amplification and A/D conversion, there are a number of electrical noise sources that may contaminate the data (5). A number of methods exist for filtering the noise in the signal, in order to best isolate and identify the signal of interest. This filtering can be done on either the analog or digital signal, or both. A low-pass filter eliminates frequencies above a certain level defined in the method, while a high-pass filter eliminates frequencies below a designated level. As noise often occurs at higher frequencies, a low pass filter is able to eliminate much of the noise in the signal. Sometimes it is necessary to restrict the data collected to within a range of frequencies, during which time a band-pass filter can be used. Other times it is necessary to eliminate a certain range of frequencies from a signal; a notch filter will be able to accomplish that task. There are a multitude of signal processors and conditioners that are used in digital signal processing. Three common methods of reducing signal noise are Butterworth filters, splines and frequency domain techniques, such as Fourier Analysis (5). Yet another method is a moving average, which is relatively simple to calculate in Excel. Each of these methods operates differently, and provided that the optimal filter is applied to a signal, the end result is the same: the signal is less choppy and smoother, thus data is cleaner and easier to analyze (for more detailed information, the reader is directed toward Bartlett (2), Challis (5)) and Street, et al. (23). The general recommendation for filter choice is the one that most effectively and accurately isolates the signal of interest. Calibration Force plate calibration is necessary to establish a regression equation to calculate ground reaction forces from output voltage, as well as to ensure accuracy of data obtained from testing. Because force plates only provide an output voltage, a calibration equation must be used to calculate what the ground reaction forces actually are. Unfortunately, often little is done by researchers to address the proper calibration of force plates (9). While calibration of some of the testable variables of the force plate can be difficult, calibration is absolutely necessary given the immense error that can be introduced even with small errors in calibration (9). The general idea behind calibration is that a range of known forces is applied to the force plate to see the resultant voltage given by the load cells, allowing the creation of a regression equation (1). For the Z-direction, a common method of calibration is to place a range of dead weights of known mass on top of the force plate, which allows the researcher to calibrate based on the resulting output voltage of the known mass. Calibration of the horizontal forces, torque and center of pressure can be a more difficult endeavor. However, researchers have proposed methods of calibration that are possible in the laboratory environment, such as a pulley system for X- and Y-direction calibration as proposed by Hall, et al. (9). In the pulley system, a regression equation is built from the output voltages with progressively higher (horizontally) applied loads. A pendulum system for dynamic calibration designed by Fairburn, et al. (6) is also a possibility for more advanced calibration. In-laboratory testing would allow a laboratory to avoid the potentially expensive calibration that is done by the force plate companies and private metricians. Technical Information of Note Force plate technical reports typically contain a data table with information about some or all of the following: linearity, hysteresis, crosstalk, and/or natural frequency. Each of these items provides valuable information about the characteristics of the force plate, as each affects the data obtained from it. Refer to Table 1 for recommended ranges. Linearity Linearity is the maximum deviation of collected force plate data from a straight line (2). Perfect linearity is ideal, but is not necessarily a requirement for accurate data collection and analysis, as it can be calibrated for by applying a higher order polynomial to the data points(2). Linearity can be expressed as: ( Where y=maximum deviation from linearity, and Y=full scale deflection (8). Full scale deflection refers to the voltage output with the highest load within the limit of the force plate. Dividing deviation from linearity by the highest voltage achieved gives a relative measure of linearity, and allows comparison to a standard. Hysteresis Hysteresis is the difference in output values seen during the loading and unloading of a material (2). This is a quality that should also be minimized, as many force plate measurements involve both a loading and unloading component (see Figure 3). For example, large hysteresis in a load cell might over-estimate the forces in the eccentric portion of a squat, while correctly estimating the forces during the concentric portion. Hysteresis is sometimes seen as a result of a mechanical lag in deformity return to normal shape occurring during loading of the force transducers. Hysteresis can be calculated with the equation: ) Where XL = output voltage for a given load during loading, XU = output voltage for the same given load during unloading, and Z =full scale deflection (2). Cross-Talk Many force plates measure forces in multiple planes; the components required to measure the different directions generally have at least a minor amount of cross-talk. Cross-talk refers to the interference of force in one component direction with the measurement of force by a component in another direction (2). It is important that this quality is minimized, so that forces from one plane are not measured on another, thus falsely attributing forces to an incorrect source. Bartlett (2) stated that less than 3% of full-scale deflection is preferable. Natural Frequency Maximum Frequency Ratio When struck, every object has a frequency at which it will tend to vibrate, (5). Force plates, as they are constructed of multiple materials, sometimes have multiple natural frequencies. Force plate manufacturers often report the natural frequency of the force plate when set up according to manufacturer specifications. This natural frequency should be significantly higher than that of the measurement, as it greatly increases the ease of isolating the measurement signal from the plate vibration. Force plates generally have high natural frequencies to aid in the ease of isolation through filtering. For example, the Kistler Type 9281E Triplanar force plate has a natural frequency of 1000 Hz (Kistler Group, Winterthur, Switzerland). The high natural frequency of this force plate is high enough to measure the impact activities of sports, which can surpass 100 Hz (2). The ratio of frequency of the measured skill to natural frequency (Maximum Frequency Ratio) should be less or equal to 0.2, so that the information of interest in the signal can be effectively isolated from the natural frequency of the plate. Minimizing Error The possibility of inaccurate measurements must be minimized if accurate conclusions are to be drawn. Certain steps can be taken to reduce the possibility of error, although even the most optimal setup will have at least a small amount of error. First and foremost, if a user does not know how to properly use the force plate and the software associated with it, the largest source of error may be the user himself. In this article, it is emphasized that with a proper education and the right information, the reader of this paper should be able to understand the basics of using a force platform, thus severely reducing potential for user error. Adherence to the recommendations by Bartlett (2) will also serve to ensure accuracy of the data collected by the plate. Any deviance of the force plate characteristics outside of the recommendations increases the risk of inaccuracy. For example, Lees and Lake (14) and Hall, et al. (9) showed how cross-talk of even 1% could introduce a large amount of error in certain gait measurements. Calibration should occur over a range of loads, from unloaded to above the highest expected load, within the manufacturer-specified loads of the force plate (if the expected loads are outside of the range, then a new plate with greater load range is necessary). For example, in an isometric pull, where measurements of vertical ground reaction force can exceed 7000 N or more (4), the force plate should be calibrated in the Z-axis with loads ranging from 0kg to more than 700kg. For horizontal calibration, a pulley system, like the one designed by Hall, et al. (9) would suffice. Dynamic calibration can be a bit more tricky, requiring expensive equipment or complex methodology. This can be done by major force plate companies or by private metricians. It is also extremely important to install and adjust force plates based on manufacturer recommendations. Manufacturer-reported technical data about the force plate (e.g. hysteresis, linearity) are measured and determined under set conditions. Recommendations for where the force plate is installed, the type of flooring installed on and which floor level it is installed on must all be followed. A level surface for installation is required. Should the conditions during use deviate from those specified by the manufacturer, there is the possibility that those reported qualities (linearity, hysteresis) are no longer accurate. Even with an ideal setup, there remain other sources for error. Other such sources of error are thermal noise, chemical noise, and electrical interference. Thermal noise is associated with the temperature of the device in use. Part of the reason for allowing a device to warm up is so that thermal noise is allowed to stabilize, as rising component temperatures result in changing electrical noise. Chemical noise is random noise that exists everywhere, and comes from variations in temperature, humidity, pressure and other sources. Electrical noise results from devices around the testing area that use electricity, such as lighting and equipment. Electrical noise is at 60 Hz and progressively weaker at its harmonics- 120 Hz, 180 Hz, etc. For example, if a force platform is placed in a room that has fluorescent lights, air conditioning/heat, and the building is located near power lines, electrical noise may be a substantial source of interference. In all devices, the measured value is the result of the true score plus error. While one can attempt to eliminate as much error as possible, there will always be a degree of error in the collected data. It is up to the tester to eliminate and reduce as many sources of error as possible, and a theoretical judgment as to how much error in the collection is acceptable. Our Laboratory Equipment and Processing While our laboratory uses tri-directional force plates, the majority of force plates we use are unidirectional, and measure only in the vertical direction (See Figure 4 for a photo). Although it is a drawback to only allow collection in the vertical direction, the plates offer a substantial reduction in cost over other plates offered by KistlerTM or AMTITM, for example. Furthermore, a number of studies have demonstrated that vertical forces and vertically- oriented skills have strong relationships to explosiveness and speed in sporting movements, thus measurement of vertical forces is of substantial importance (12, 20, 22, 25). In addition, we use force plates (0.914 x 0.46 m; 3 x 1.5; Rice Lake Weighing Systems, Rice Lake, WI) situated side-by-side to allow for collection of unilateral force data. For bilateral data collection, the forces from each force plate are summed. Each plate sits on a level concrete pad that is on the ground floor of the laboratory, to reduce contamination o f data from extraneous sources. Each force plate in the Sport Science laboratory is attached to Transducer Techniques TM0-2 amplifier and conditioner module (Transducer Techniques, Temecula, CA, USA). The amplifier provides both the excitation signal (the initial current going to the strain gage load cell) and amplification of the analog signal. In addition, the module provides an analog low-pass filter at 16 Hz. In between the amplifier/conditioner and the A/D converter is a shielded connector block. The BNC-2110 (National Instruments, Austin, TX, USA) accepts the analog signal and conveys the signal to the A/D converter. The block then connects to a DAQCard-6063E (National Instruments, Austin TX, USA). The DAQCard-6063E converts the analog signal to a digital signal. The digitized signal is then analyzed with custom software developed in LabVIEWTM (National Instruments, Austin TX, USA). The custom software weve developed in LabVIEWTM samples the analog signal at 1000hz. The custom software has been set up to save the digital signal file and filter the digitized signal using a 4th order low-pass Butterworth filter at 100 Hz. From there, the signal can be analyzed for whatever variables are of interest. Refer to Kraska, et al. (12) for examples of measures of interest for static and countermovement jumps, and Leary, et al. (13) for examples of measures of interest in the isometric mid-thigh pull. The Data Collection Process Calibration of our force plates is performed immediately before the data collection process, which ensures that the calibration equation used in data analysis is established under similar environmental conditions as the data collection as well as avoids a potential shift of voltage output over time. Prior to calibration, force plates, amplifiers, A/D converters and computers are all turned on so that all of the collection equipment can warm up (thus stabilizing thermal and instrumentation noise). After this warm up period, the force plates are calibrated using loads from 0 kg to 350kg or 500kg, depending on the specific use of the plate (either jumps or isometric pulls). The plates are progressively loaded in 25kg increments, with the output voltage recorded each time. A linear regression equation is then applied to the calibration load data set in Microsoft Excel. This regression equation is saved, and used in the custom LabVIEWTM program during analysis. Conclusion A full understanding of a testing device and its characteristics are an integral part of accuracy, validity and reliability of testing. The force plate is a rather complex device. The complexities of the device and its peripherals allow the user to collect a large variety of high-quality data for analysis that are difficult to obtain via other means. While it is somewhat difficult to master use of the device, the plethora of information that can be obtained from a force plate makes the endeavor more than worthwhile.
Sunday, October 13, 2019
The Epistemology of Hegels Introduction to the Phenomenology of Spirit
The Epistemology of Hegel's Introduction to the Phenomenology of Spirit In his Phenomenology of Spirit, G.W.F. Hegel lays out a process by which one may come to know absolute truth. This process shows a gradual evolution from a state of "natural consciousness" (56) (1) to one of complete self-consciousness - which leads to an understanding of the "nature of absolute knowledge itself" (66). By understanding the relation between consciousness and truth, one may come to know the true nature of our existence. Hegel proposes to answer these questions in one bold stroke; he relates them in such a way as to make an infinitely complex and indiscernible universe a unitary whole. This process from a natural state to a kind of transcendence leads one from the chaos of the immediate to the sublimity of the universal. Consciousness begins as what Hegel calls "a natural consciousness" (56). That which is known to this consciousness "will prove to be knowledge only in conception, not in reality" (56). This kind of consciousness assumes knowledge of reality that is often refuted. Hegel says, "since natural consciousness does forthwith think it really knows, it views its own experiential course in a negative light, taking the very realization of its conception to be instead its own loss" (57), demonstrating the frailty of this method of thought. To respond to this shortcoming of consciousness, some might attempt to find an absolute absolved from one-sidedness, from sheer relativity to the knowing subject. Others will not respond this way, however, instead spinning off into apathy, subjectivism, or nihilism (59). Those who do attempt to find an objective truth most often turn to science. Some have suggested that the intellect is an ... ...s to relate to that reality at all. Thus as one comes to be fully aware of consciousness, one becomes fully aware of absolute reality. Hegel describes a way by which one may come to know absolute truth. This process shows a transition from a state of "natural consciousness" (56) to one of complete self-consciousness - which leads to an understanding of the "nature of absolute knowledge itself" (66). By understanding the relation between consciousness and truth, one may come to know the true nature of our existence. Thus, Hegel answers these questions in one bold stroke; he relates them in such a way as to make an infinitely complex and indiscernible universe a unitary whole. This whole is not only total self-consciousness, but also total awareness of absolute reality. 1. * Page References are to the unpublished translation by Peter Fuss and John Dobbins.
Saturday, October 12, 2019
Symbols and Symbolism in Keseys One Flew Over the Cuckoos Nest :: One Flew Over Cuckoos Nest
Symbolism in One Flew Over The Cuckoo's Nest Ken Kesey presents his masterpiece, One Flew Over The Cuckoo's Nest, with popular culture symbolism of the 1960s. This strategy helps paint a vivid picture in the reader's mind. Music and cartoons of the times are often referred to in the novel. These help to exaggerate the characters and the state of the mental institution. Popular culture supplies the music which is used as a recurring theme in the novel. McMurphy dislikes the tape playing in the day room because it represents how the ward is run routinely and without change. McMurphy also uses music to obtain good relations with the patients. On his first morning in the hospital, McMurphy is heard singing several verses of "The Wagoner's Lad": "Hard livin's my pleasure, my money's my o-o-own, an' them that don't like me, they can leave me alone" (Kesey 93 ). In this scene, he sings to express his good spirits (Twayne). Later, in the hall, as one of the aides goes to talk to the angry Big Nurse, McMurphy whistles, with an illusion to the Globetrotters, "Sweet Georgia Brown" as " an amusing accompaniment to the aide's evasive shuffle" (Sherwood 399). After shocking Nurse Ratched with his whale shorts, he accompanies her retreat to the Nurses' Station with the song "The Roving Gambler" to establish his style, define his character, and show his indifferen ce to policy: "She took me to her parlor, and coooo-ooled me with her fan'- I can hear the whack as he slaps his bare belly - whispered low in her mamma's ear, I lu-uhvve that gamblin' man" (Kesey 97). The cartoon symbolism demonstrated in One Flew Over The Cuckoo's Nest helps create dynamic features and traits in each character. Bromden indicates early that the ward is "Like a cartoon world, where the figures are flat and outlined in black, jerking through some kind of goofy story that might be real funny if it weren't for the cartoon figures being real guys..."( 31). Technicians in the hospital speak with voices that "are forced and too quick on the comeback to be real talk - more like cartoon comedy speech" (33). Kesey chooses to describe some of his characters as symbolic caricatures, and others as stock figures who outgrow their black outlines (Twayne). The Big Nurse remains a cartoon villain, funny in her excessive frustration and hateful in her manipulations towards the patients.
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