#1




How is linearity of PLA obvious?
The perceptron learning algo is very cool in its simplicity, but, although it was introduced in the course as sort of obviously linear, that was immediately apparen to me. Just wondering what made it obvious to others if it was. Is it the formula on page 6 (wsub1*xsub1 + wsub2*xsub2 + b = 0)? That seems similar to the old line equation of y=mx+b but not exactly same. However, after playing on paper with different choices of w's and b, I think I see that regardless of what values I choose for the weights and threshold that a line is formed. But how is that obvious theoretically that the shape is a line, without trying various values like i did?

#2




Re: How is linearity of PLA obvious?
It is not obvious at all, and for this reason I would recommend Problem 1.2 in the text in case anyone is having similar doubts.
The classification function: is called linear because the weights appear 'linearly' in this formula. Now to see that this corresponds to what in highschool we learned as a line requires a little algebra. First, the classification function is not a line. The classification function is given by the formula above which assigns +1 to some regions of the space and 1 to others. What corresponds to the line is the boundary between the region where the hypothesis is +1 and the region where the hypothesis is 1. It is the separator that is a line. Fix . The boundary corresponds exactly to those points for which Lets consider the case in 2dim. Then and translates to . Rearrange a little and you have the following equation: that must be satisfied by any point that lies on the decision boundary. Thus, the decision boundary is indeed a line, and one can identify . Quote:
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#3




Re: How is linearity of PLA obvious?
Thanks Dr. MagdonIsmail, that was very helpful. I'm glad it wasn't obvious! Just to ensure I understand it correctly, the way I'm conceptualizing it is slightly differently, but I hope is still correct. I see the function being in 3d space, with y (the output) as the vertical axis, and and forming the "horizontal plane." If you plot all the points, such that you would get a tilted plane, that intersects the y axis at . The boundary line would then be all values of and which results in y=0.
If you imagine looking straight down on this tilted plane (so it does not appear tilted anymore), the points where y=0 would form a straight line. Is this a correct way of conceptualizing it? Also, since this process reminded me of multiple regression, it occurred to me that you could get a curved boundary if you included interaction terms in the equation; however this would require another weight/parameter, and I doubt the PLA algorithm would still work, since it depends on the angle between straight lines. Finally, just to confirm another suspicion, since there are 3 unknowns in your explication above, it is impossible to derive the 3 weights from just being given the boundary line (e.g. two points in the space)  correct? 
#4




Re: How is linearity of PLA obvious?
May I add a technical point to the answer: for maximum generality, it is necessary to deal with all possible cases of the weight parameters.
The case where parameter w2 is nonzero was dealt with by magdon. The case where w1 is nonzero is similarly shown to a straight line separator in the plane. But if both w1 and w2 are zero, there is no separation: the perceptron function is a constant for all points (1, x1, x2). This does not cause any problems with the operation of the algorithm, as one step of the algorithm stops this being so. To be maximally pedantic, in the case where the input data set consists of the one point (1, x1, x2)=(1, 0, 0) with y either +1 or 1, and we start with w1=w2=0, the perceptron algorithm still works (in one step) but it never gives a line in the plane. 
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