求lim(x,y)→(∞,∞)〔√(x²y²-1)-√(x²y² 1)〕求lim(x,y)→(∞,∞)〔√(x²y²-1)-√(x²y²+1)〕

来源：学生作业帮助网编辑：作业帮时间：2024/07/12 10:56:20

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求lim(x,y)→(∞,∞)〔√(x²y²-1)-√(x²y² 1)〕求lim(x,y)→(∞,∞)〔√(x²y²-1)-√(x²y²+1)〕
求lim(x,y)→(∞,∞)〔√(x²y²-1)-√(x²y² 1)〕
求lim(x,y)→(∞,∞)〔√(x²y²-1)-√(x²y²+1)〕

求lim(x,y)→(∞,∞)〔√(x²y²-1)-√(x²y² 1)〕求lim(x,y)→(∞,∞)〔√(x²y²-1)-√(x²y²+1)〕
lim(x,y)→(无穷,无穷)[根号(x^2y^2 -1 )-根号(x^2y^2+1)]
=lim(x,y)→(无穷,无穷)[x^2y^2-1 - x^2y^2-1]/[根号(x^2y^2 -1 )+根号(x^2y^2+1)]
=lim(x,y)→(无穷,无穷)[-2]/[根号(x^2y^2 -1 )+根号(x^2y^2+1)]
=0

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