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Johan · Joined: 25 Jun 2007 Posts: 206 Location: Bornem Belgium

re'born,

My approach on the potential <69> DP in R13C17 was diffirent, but the result is the same.
To avoid the <69> DP there are 3 possible solutions.

1. R1C1=1

2. R3C7=8

3. OR both (R1C1=1 AND R3C7=8 )

Suppose R3C7=8 => R3C6=2 => R1C4=9 => R1C7=6 => R1C1=1, which means that R1C1 must be <1>, and the puzzle is solved.

sdq_pete · Joined: 30 Apr 2007 Posts: 119 Location: Rotterdam, NL

I had:

re'born · Joined: 28 Oct 2007 Posts: 80

cgordon · Joined: 04 May 2007 Posts: 769 Location: ontario, canada

duffy · Joined: 13 Sep 2007 Posts: 26 Location: Toronto Canada

For me, the two alternatives given by re'born are not one-step solutions. However, that was an interesting analysis of the DP by re'born and Johan. (Should we give this a UR Type number?) Anyway, my simpler mind stuck to the xy-wing route. Shocked

After Peter's first xy-wing (which removes three 6's, not counting the one in r6c2 which also quickly goes), there is an interesting combination of 2,5 and 6 in pairs at the corners where r49 and c38 intersect. Peter's last xy-wing is one of two possible on those corners at this point; I used the one pivoted on r4c9. Idea

Don D.

duffy · Joined: 13 Sep 2007 Posts: 26 Location: Toronto Canada

Sorry, I keep making notation errors: the pivot I used was r4c3. Embarassed

At the risk of making another such error, I will add a note for cgordon: the first xy-wing is 26-27-67 pivoted on r5c7. The three 6's I noted are two in box 4 and one in box six.
Don

cgordon · Joined: 04 May 2007 Posts: 769 Location: ontario, canada

Asellus · Posted: Thu Nov 08, 2007 12:17 am Post subject:

Here's another one-step solution: