Movie Analysis

 

 

 

 

• The film must deal with issues of race

 

• Watch the movie or documentary twice and take notes of both major and minor events and characters. It’s a mistake to rely on the power of your memory only, there’s always something we overlook or forget

• Carry out a thorough research. Watching the movie isn’t enough, research is equally important. Look for details such as the name of filmmaker and his/her motivation to make that film or documentary work, locations, plot, characterization, historic events that served as an inspiration for the movie (if applicable). Basically, your research should serve to collect information that provides more depth to the review

• Analyze the movie after you watching it. Don’t start working on the review if you aren’t sure you understand the film and how it impacts issues about race. Evaluate the movie from beginning to an end. Re-watch it, if necessary, if you find some parts confusing. Only when you understand events that happened on the screen will you find it easier to create the review.

• Draft an outline that you will follow to write the review in a concise and cohesive fashion

• Include examples for claims you make about race in the movie. Mention an example of a situation or scene when that was evident. Provide examples when commenting dialogues, locations, plot, everything.
• Consider and comment a movie’s originality and quality of scenes. Explain how the movie stands out or whether it just uses the same approach that worked for previous works in the industry. What did you learn about race, what do you learn about you?

 

Sample Solution

ter on, one of the most known methods will be discussed in a detailed way. The facial recognition methods that can be used, all have a different approach. Some are more frequently used for facial recognition algorithms than others. The use of a method also depends on the needed applications. For instance, surveillance applications may best be served by capturing face images by means of a video camera while image database investigations may require static intensity images taken by a standard camera. Some other applications, such as access to top security domains, may even necessitate the forgoing of the nonintrusive quality of face recognition by requiring the user to stand in front of a 3D scanner or an infrared sensor[15]. Consequently, there can be concluded that there can be made a division of three groups of face recognition techniques, depending on the wanted type of data results, i.e. methods that compare images, methods that look at data from video cameras and methods that deal with other sensory data, like 3D pictures or infrared imagery. All of them can be used in different ways, to prevent crime from happening or recurring. ii. How do these technologies work? As listed above, there exists a long list of methods and algorithms that can be used for facial recognition. Four of them are used frequently and are most known in the literature, i.e. Eigenface Method, Correlation Method, Fisherface Method and the Linear Subspaces Method. But how do these facial recognition work? Because of word limitations, only one of those four facial recognition techniques, i.e The Eigenface Method, will be discussed. Hopefully this will give an general idea of how facial recognition works and can be used. One of the major difficulties of facial recognition, is that you have to cope with the fact that a person’s appearance may change, such that the two images that are being compared differentiate too much from each other. Also environmental changes in pictures, like lightning, have to be taken into account, in order to have successful facial recognition. Thus from a picture of a face, as well as from a live face, some yet more abstract visual representation must be established which can mediate recognition despite the fact that in real life the same face will hardl

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