SudoCue Users

[sudokuEd]

This must be the Mother Of All X-tremes. SudoCue scores it at 16909! Even the horrible Oct 23 puzzle was 'only' 11845. That took a week to solve.

OK, that's the end of the MOAM
Got to here OK, then found some good moves to get started.

[Para]

I'll start at it tonight and see where it gets me. Then i'll let you see how far i got compared to you. Was kinda tempting to read yours first but i want to have a go at it first.

Para

p.s. yes also have to start the assasin, do todays nightmare and one trick pony and going to play tennis. Now to find time for sleep.

[sudokuEd]

[Para]

Ok this is how far i got without you. Let's compare

[Para]

Ummm Ed

One quick question. How did you eliminate the 2 in R4C6. It is gone but don't see how you did it? Just curious.

This is the code after your first post. And i am missing the reason why the 2 there is gone. I am sure you got it fogured out but could you share ?

[sudokuEd]

[rcbroughton]

Okay, I'll add a couple of moves I can see

12. 1 cannot be in r4c6 - ALS using value 3 between [r4c3 r1c3 r2c3 r7c3 r8c3 r9c3] and [r4c5 r6c5 r7c5 r9c5]

13. 1 has to be in r7c3 - hidden single in the diagonal

[Para]

I am resulting to raw moves nothing beautiful.

14. No 7 in R1C9. This is how.
R1C9 and R8C4 contain at least one 2. (colour the 2's from N8)
Placing a 7 in R1C9 forces a 7 in R4C8 and this interferes with previous statement. So no 7 in R1C9.

Para

[Para]

Ok, this step is dedicated to Ed who used it before in the December 29th X-file.

15. no 8 in R4C5.
15a. 8 on D\ in R2C2 --->>> 8 in D/ in R4C6 --->> no 8 in R4C5
15b. 8 on D\ in R4C4 --->>> no 8 in R4C5
15c. 8 on D\ in R8C8 --->>> 8 in D/ in R4C6 --->> no 8 in R4C5

Para

[rcbroughton]

Another ALS following the last elimination:
16. 8 cannot be in r8c4 - ALS using 7 on [r79c5] and [r4c45 r5c46 r6c56]

17. xy chain (2)r8c4->r4c4->(8)r4c4->r4c6->r8c2->(6)r8c2. Cannot have 6 in r8c4.

18. xy chain (7)r8c7->r8c4->(2)r8c4->r4c4->(8)r4c4->r4c6->r8c2->(6)r8c2. Cannot have 6 in r8c7 or 7 in r8c2

19. xy chain (1)r8c8->r8c7->(7)r8c7->r8c4->(2)r8c4->r4c4->(8)r4c4->r4c6->r8c2->(6)r8c2. Cannot have 6 in r8c8

20. 6 is now locked in n7 for row 8 - cannot appear anywhere else in n7

[Para]

[rcbroughton]

[rcbroughton]

Getting desperate here - not particlarly elegant next step but I can't see anything else.

Anybody got anything better?

21. 1 cannot be in r6c6
my reasoning. if we place a 1 there we force the following.
21a r6c9(1) -> r8c8(8) -> r8c2(6)
21b r8c2(6) -> r2c2(9) -> r2c8(7)
21c r8c2(6) -> r8c3(2) -> r9c1(9) & r8c4(7) & r9c4(8)
21d r9c1(9) & r2c8(7) -> r1c9(2) -> r9c9(6)

This leads to a contradiction at r9c5 as r8c4(7) r9c3(8) and r9c9(6) remove all possibilities at that cell

[edit]
. . . and that leaves
22. the 1 in D\ must be at r8c8

[Para]

Funny.

I just made exactly the same elimination in exactly the same desperate way.
Was still thinking on how to write it down.

If we are resulting to these measures

23. R2C8 can't be 7. This is the path.
23a. R2C8= 7 -->> R9C7=7 -->> R8C7=8
23b. R8C2= 6 -->> R8C3=2 -->> R9C1=9
23c. R9C3= 8 -->> R9C5=6 -->> R1C9 and R9C9 both 2

Para

[rcbroughton]

Ok - getting somewhere.

24. r6c5 cannot be 6.
24a. r6c5(6) -> r5c4(9), r4c4(8), r6c6(2), r4c6(7), r6c2(9) and r4c6(7)
24b. r6c2(9) -> r2c2(6) -> r9c9(9), r8c2(8) -> r9c1=2 and r9c3=2

Richard