As @ErwinSmout pointed out, difference is a generally easy way to do it. But since you can’t use it, there is a tricky workaround using counts. I’m assuming that every album_id present in the songs relation is also present in the albums relation.

PROJECT album_id from the songs relation (note that relational algebra’s PROJECT is equivalent to SQL’s SELECT DISTINCT). I’ll call this relation song_albums. Now lets take the count of the albums relation, call this m, and take the count of the new table, call this n.

Take the Cartesian product of the albums relation and the song_albums relation. This new relation has m*n rows. Now if you do a count, grouped by album_name, each of the m album_name‘s will have a count of n. Not very helpful.

But now, we SELECT from the relation rows where albums.album_id != song_albums.album_id. Now, if you do a count grouped by album_name, the count for those albums that were not in the original songs relation will be n, while those that were originally in there will have a count less than n, since rows would have been removed based on how many songs with that album were in the original songs relation.

Edit: As it turns out, this isn’t a strictly relational-algebra solution: In SQL, a 1 x 1 table, such as the one containing n can simply be treated as an integer and used in an equality comparison. However, according to Wikipedia, selection must make a comparison between either two attributes of a relation, or an attribute and a constant value.

Another obstacle which will be dealt with by another ill-recommended Cartesian product: we can take the Cartesian product of the 1 x 1 relation containing n with our most recent relation. Now we can make a proper relational-algebra selection since we have an attribute that is always equal to n.

Since this has gotten rather complex, here is a relational-algebra expression capturing the above english explanation:

Note that n is a 1 x 1 relation with an attribute named “count”.