问题
问答题
设二元函数z=x2ex+y,求:
答案
参考答案:
əz/əx = 2xe(x+y)+x2e(x+y) = (x2+2x)e(x+y)
ez/ey = x2e(x+y)
dz = əz/əx dx + ez/ey dy
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设二元函数z=x2ex+y,求:
参考答案:
əz/əx = 2xe(x+y)+x2e(x+y) = (x2+2x)e(x+y)
ez/ey = x2e(x+y)
dz = əz/əx dx + ez/ey dy