dailysudoku.com

[daj95376]

[peterj]

Sure someone will make something elegant out of all those URs - for me another wing..

[tlanglet]

Did someone mentions URs? How about a 10-cell BUG-Lite+2 (3689)r1567c1567.

Danny and others, is this is a valid pattern? It only has four candidate DP digits, 3689, in four rows and four columns but the staggered (68) bivalues in box5 shares both digits in stack2 and band 2 for a total of five boxes. Each candidate digit in every ADP cell "sees" only one other occurrence of that digit so it is possible to "walk" all DP digits through all ADP cells in the fashion of a deadly pattern.

Assuming it is valid, we get r1c5=4,r1c5=7,r5c1=7 for internal SIS; r1c6<>6=3.
(4)r1c5-(4=6)r1c9;
||
(7)r1c5-(7=6)r1c3;
||
(7)r5c1-(9)r5c1=r5c7-(9=8)r6c7-(8=6)r6c6;
As fun as it was (given it is a valid ADP) this move does not solve the puzzle.

So we try again with the same SIS: r1c5=4,r1c5=7,r5c1=7; r5c5<>36
(4)r1c5-(4=6)r1c9-r3c9=r3c4-r7c4=(6)r9c5;
||
(7)r1c5-(7=9)r3c5-(9=6)r9c5;
||
(7)r5c1-(9)r5c1=r5c7-(9=8)r6c7-(8=6)r6c6;
But this move is equivalent to the first attempt.

Looking at the external SIS, we find that the only inferences are various combinations of the digit 6, all of which seem to result in r1c6<>3 as noted in the first attempt again. Thus, a one step move like the one by Peter is still needed to complete the puzzle.


The real issue, for me, is the question of the validity of the possible BUG-Lite. Is it valid??

Ted

[daj95376]

After r1c5<>47 and r5c1<>7:

[tlanglet]

[Marty R.]

[peterj]

Marty there is a 368 triple in r167c6 that eliminates it - or a 19 hidden pair whichever you see first (I find HP's hard to see personally)

[Marty R.]