笨笨熊的回答:a1x+b1y=c1 (1) a2x+b2y=c2 (2) a1/a2=b1/b2≠c1/c2 时无解 当a1/a2=b1/b2=c1/c2时,方程组有无数个解 a1/a2≠b1/b2时有唯一解: x=(c1b2-c2b1)/a1b2-a2b1 y=(c1a2-c2a1)/(b1a2-b2a1) 笨笨熊的回答:a1x+b1y=c1 (1) a2x+b2y=c2 (2) a1/a2=b1/b2≠c1/c2 时无解 当a1/a2=b1/b2=c1/c2时,方程组有无数个解 a1/a2≠b1/b2时有唯一解: x=(c1b2-c2b1)/a1b2-a2b1 y=(c1a2-c2a1)/(b1a2-b2a1) 时差的回答:解:当a1/a2=b1/b2=c1/c2时,方程组有无数个解,若不符合上述条件,则方程组有唯一解 |
