dailysudoku.com

[Johan]

I suppose this one was not so VH, one xy-chain solves the puzzle i think.

[Captain Pete]

Could you describe the XY-Chain in this puzzle?

[sdq_pete]

I found myself unable to get past the following point:

[Johan]

XY-chain length 4.

Starting with number 2 in [R1C6] = 3 in [R1C7] = 6 in [R3C8] = 7 in [R3C5(chain end)].

Starting with number 9 in [R1C6] = 7 in [R9C6].
This means either 7 resides in [R3C5] or in [R9C6] or in both [R3C5,R9C6]
Both cells [R3C5,R9C6] can see the bi-value cell [47] in R3C6, which eliminates the 7 from R3C6, that solves the puzzle.

Both 7's in R2C5 and R2C6 must be erased in the grid, I couldn't delete them before copying and pasting.

[/code]

[jLo]

[Earl]

Peter,

On your grid there is a four-step xy chain beginning at R9C6, ending at R4C8 which removes the 7 from R9C8, and opens the puzzle.

Earl

[sdq_pete]

[Earl]

Peter,

It is an xy chain, not a strong link of 7's.
If R9C6 is 7, R9C8 cannot be 7.
If R9C6 is 9, R9C8 cannot be 7 because R4C8 is 7.

(If R9C6 is 9, R8C5 is 7, R3C5 is 6, R3C8 is 3, and R4C8 is 7).

Earl

[sdq_pete]

Hi Earl

Ah, is that an XY chain? It actually seems a similar argument to what I mentioned myself - a presumed value leading to a logical impasse. Is there anything special about that route? I mean, I could just as easily have said, if R9C6 = 9, then R1C6 = 2, R1C7 = 3 and R4C7 = 7... So, is there something special about your route to R4C8 = 7 or is it trial and error?

Peter

[Earl]

Peter,

I suppose any chain can be thought of as trial and error, but an xy chain does have a pincer effect which is logic. One might think of an xy chain as an xy wing with one arm extended.

Earl

[keith]

I know I'm coming in late on this discussion, but the puzzle can be solved with a couple of XYZ-wings.

Keith