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[daj95376]

[peterj]

Woohoo! I've been looking for one of these for weeks... makes it a two-stepper

[Mogulmeister]

One stepper (I think) [Edit - no it isn't!!]

[Mogulmeister]

r6c7(4=5)-r1c7=r2c9-(5=2)r2c2-r6c2-(2=58)r6c2c4-(5)r6c7 so r6c7<>5

Nope doesn't solve it...my mistake !

[Marty R.]

I used a half-dozen of the usual steps.

[oaxen]

[quote="peterj"]Woohoo! I've been looking for one of these for weeks... makes it a two-stepper]

Why a two stepper? There are many bivalues from where successful onestepper chains can start.

[peterj]

Oaxen, Iwas mostly happy to find an ALS-XZ - that it reduced the number of steps significantly was icing on the cake!

[tlanglet]

A classic example of an ALS-XZ Great find.

Ted

[tlanglet]

I found a (terminology again #@-!...) flightless finned xy-wing 2-58 with vertex 28 in r6c2, pincer 25 in r2c2, pincer 58 in r6c4 and fin 5 in r6c2.
If xy-wing is true; no deletions but (5)r2c2 - r2c9 = (5)r4c9; r6c7<>5
If fin is true, (5)r6c2; r6c7<>5. (Fun but not very productive.)

Next an ALS-XZ pattern which has no direct deletions, but with a little transport makes a score
ALS_A 159 in r19c3
ALS_B 259 in b1
Exclusive=5
Common=9
No direct deletions are possible with this configuration, but when all the (9s) in ALS_B are transported:
(9)r3c1 - r3c45 = r1c4 - r9c4 = (9)r9c3; r457c3<>9.
Note: I realize that a x-wing 9 or an AIC will make the identical deletions, but I want to insure my ALS operations are valid.)

ALS239[(2)r67c6 = (9)r7r6]r67c6 - r7c12 = r9c3 - (9=5)r1c3 - (5=2)r2c2; r2c6<>2

At this point, I sort of gave in and used the ALS-XZ posted by Peterj to delete (9) in r9c3 to complete the puzzle

Ted

[daj95376]

[Mogulmeister]

Do you mean Luke or Ted Danny ?

[daj95376]

[Mogulmeister]

Good - I knew I was missing context somewhere..........

[tlanglet]

[tlanglet]

Danny & Luke, at this point I have still another question on a related issue; naked pair (np) vs hidden pair (hp).

Danny, for this puzzle you suggested an alternate step using a np: np(58)r6c24 = (2)r6c2 - (2=5)r2c2 - r2c9 = (5)r4c9; r6c7<>5

Does the pair become hidden if recast to: hp(58)r6c25 = (5)r6c7 - r4c9 = r2c9 - (5=2)r2c2; r6c7<>5

I have seen references to both terms and, being a crude mechanic, do not understand the finer points such as terminology. In the two forms noted here, the only difference I see is whether the extra digit causing the "almost" condition is, or is not, one of the digits of the pair.

Ted

[daj95376]

For anyone who might be interested in the grid under discussion.

[ronk]

[tlanglet]

Thanks Danny & Ronk for the feedback.

Danny, I think I now understand the key to what is naked and what is hidden.

Ronk, I was not sure how to interpret the chain. The chain as posted ends with r2c2=2 given the initial strong inference hp(58)r6c25 = (5)r6c7, but I did not even include (2) in the initial inference even though I assumed that the conflict was between the two (2s) in r26c2.

How could I write the chain to make the exclusion obvious?

Ted

[ronk]

[tlanglet]

I appreciate the timely feedback.

Ted