则iS=i2+2i3+3i4…+1999i2000+2000i2001 ②,
①减去②且错位相减 可得 (1-i)S=i+i2+i3+…+i2000-2001i2001=
| i(1−i2000) |
| 1−i |
| i(1−1) |
| 1−i |
∴S=
| −2000i |
| 1−i |
| −2000i(1+i) |
| (1−i)(1+i) |
| −2000i+2000 |
| 2 |
故答案为:1000-1000i.
| i(1−i2000) |
| 1−i |
| i(1−1) |
| 1−i |
| −2000i |
| 1−i |
| −2000i(1+i) |
| (1−i)(1+i) |
| −2000i+2000 |
| 2 |