问题
填空题
分解因式:x2-2x-1=______.
答案
先令x2-2x-1=0,
解得x=1±
,2
∴x2-2x-1=[x-(1+
)][x-(1-2
)]=(x-1-2
)(x-1+2
).2
故答案是(x-1-
)(x-1+2
).2
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分解因式:x2-2x-1=______.
先令x2-2x-1=0,
解得x=1±
,2
∴x2-2x-1=[x-(1+
)][x-(1-2
)]=(x-1-2
)(x-1+2
).2
故答案是(x-1-
)(x-1+2
).2