- Kºsºvº ºº::cººsses we see see ee e.e. e. e. e. e. e. İ - So vºys §§§ ºv.axoS : I O J. º ºſ Ifo GIH,L EI) #. É # % % * Fif s sº § § : § \ A:Nº Sº s i # }S Wö gºlsº A SYLOW FACTOR TABLE OF THE - FIRST TWELVE THOUSAND NUMBERS Giving the possible number of Sylow sub-groups of a group of given order between the limits of 0 and 12000 HENRY WALTER STAGER to Q WASHINGTON, D. C. PUBLISHED BY THE CARNEGIE INSTITUTION OF WASHINGTON 1916 Jºhl,2602060 IGI ‘ON NOILVOIT&Iſhq NOLONIHSVM HO NOILſ),LILSNI (II)SINXIVO INTRODUCTION. The practical application of the following well-known theorem of Sylow— If p" is the highest power of a prime p which divides the order of a group G, the sub-groups of G of order p" form a single conjugate set and their number is congruent to unity, mod. p.–* in determining the possible number of the Sylow sub-groups of a given group requires considerable numerical computation before even tenta- tive results can be obtained. The tables herewith published furnish the possible number of the Sylow sub-groups for all groups whose order does not exceed 12000. The table is arranged according to the system which is usual in tables of common logarithms of numbers. There are just one hundred numbers to a page. To each number is allotted a rectangle, found by the intersection of the proper row and column, in which is given the following information: 1. In the column at the extreme left of each rectangle is found the representation of the number as a product of powers of primes; for instance, N = 0.2b&cy . ., where a, b, c, . . . are distinct primes. In case the number is a prime, it is indicated by p, where i is the order of the prime in the Series: p1 = 1, p2 = 2, pa - 3, p4 = 5, . tº º ºs 2. To the right are found the values of k for each divisor of N of the form p(kp-H1), p > 2, k > 0. Values of k for which N = p(kp-H1) are indicated by a star (*). For example, we find the following entry in the table for N = 1080. 3. 39 I 3 13 5 1 7 From the column at the left, we have 1080 = 2*.3%. 5. From the values to the right, we find that 1080 is divisible by 3(1-3-1-1), 3(3.3-i-1), 3(13.3+1); 5(1.5-H1), 5(7.5-i-1), 5(43.5-i-1). The star (*) further indicates that 1080=5(43.5–H1). *Sylow, Théorèmes sur les groupes de substitutions; Math. Ann., vol. V (1872), pp. 584–594, For the particular statement of the theorem used above, compare Burnside, The Theory of Groups of Finite Order, Ed. 2, Cambridge (1911), §§ 120 et seq. These sub-groups of order p" are known as Sylow sub-groups of G. Miller, Bulletin Am. Math. Soc. (2), vol. 9 (1903), p. 543. Since for each prime factor of N, p(kp-H 1) = p, when k = 0, this value of k has been omitted. The values of k for p = 2 are not listed, as they are easily obtainable from the data of the column to the left, since every odd factor of a number is of the form (2k+1). To prevent errors, the factors are printed in Roman type and the values of k in italic type. Applying the data of the above example to Sylow's theorem, we find by taking out a single entry that the possible number of sub- groups of a Glost of order 3° is 1 or 4 or 10 or 40, corresponding to k = 0, 1, 3, or 13 respectively. In the same manner, the number of sub-groups of a Gioso of order 5 is 1 or 6 or 36 or 216. In both cases the exact number must be determined by other principles of Group Theory. The method of construction of all factor tables is essentially the same and is best illustrated in the “sieve of Eratosthenes.” In case all the factors are to be listed, as in the tables herewith, the process is slightly modified. Let the natural numbers be written down in order. Beginning with 2, write a 2 above every alternate number. Begin now at the smallest number above 2 which has no factor written above it; namely 3, and write a 3 above every third number. Begin now at the smallest number above 3 which has no factor written above it; namely 5, and write a 5 above every fifth number. The table is now complete up to 2.7. The writing of the factors above the mul- tiples of the primes in this manner up to the nth prime completes the table of prime factors up to twice the next higher prime. 3 3 7 5 3 5 7 11 3 5 2 2 2 3 2 2 2 3 2 2 2 3 2 2 5 1 2 3 4 5 6 78 9 10 11 12 13 14 15 16 17 18, 1920 21 22 23 24 25 This method gives all the prime divisors of the numbers. Similar methods may be used to secure all the factors of any particular class. Special devices serve to lessen the amount and increase the ease of the mechanical work. Since the value of any table depends upon its accuracy, two inde- pendent computations of the tables following were made by different *For a detailed description of the method of construction of factor tables the reader is referred to the Introduction of Lehmer's Factor Table for the First Ten Millions, Washington (1909). III 300742 IV methods and the results compared. Each method will now be described in detail. FIRST METHOD OF COMPUTATION. For the first computation, each sheet of paper was ruled in rec- tangles of uniform height, but of varying length, and 100 rectangles to the page. The arrangement of the numbers was the same as is usual in tables of common logarithms. The prime factors with proper powers were then entered for each number, after which the pages were glued together top to bottom in order in a continuous roll and arranged on rollers at each end. During the process of the work the rollers were securely fastened at each end of a long table. The values of k were then entered mechanically. The method of entering the values of k depends on the following considerations: Multiples of any divisor, n = p(kp-H1), for a given p and k, occur in the same column at regular intervals: if the final digit of n is 2 or 4 or 6 or 8, multiples of n occur in the same column every n/2 lines; if the final digit of n is 0, multiples of n occur every m/10 lines; if the final digit of n is 1 or 3 or 7 or 9, multiples of n occur every n lines; and if the final digit of n is 5, multiples of n occur every m/5 lines. The first appearance of a multiple of any such divisor, n = p(kp-H1), for each of the columns in which multiples may appear is evidently given by the first five multiples of n, if the final digit of n is 2 or 4 or 6 or 8; by the first multiple of n, if the final digit of n is 0; by the first ten multiples of n, if the final digit of n is 1 or 3 or 7 or 9; and by the first two multiples of n, if the final digit of n is 5. The listing of the values of k by reason of these conditions becomes a mere matter of measurement. Owing to the size of the rectangles and the rapidly increasing distance between two successive appearances of a given factor in the Same, or even in different, columns, the use of stencils as in the con- struction of the Ordinary factor tables was found to be impracticable except for a very few cases. Instead, the proper entries were deter- mined by means of a carefully graduated rule with the unit equal to the height of the rectangles. This necessitated great care not to overlook any column and required the keeping of a list of the last entry (often for each column) in each working length of the table. The first difficulty was entirely, and the second one largely, elimi- nated by the second method of computation. The first task in the actual computation was the determination of the values of the divisors, n = p(kp-H1), for the successive values of k and each odd prime such that p(kp-H1) < 12000. For every prime p, except 2 or 5, numbers of this form appear in the same column every p” lines and the values of k for any two successive numbers in the same column differ by 10. It was, therefore, only necessary to find n = p(kp-H1) for the first ten values of k, k = 1, 2, 3, . . . 10, and the remaining values could be determined by measurement. Evidently, the divisors are the numbers such that N = p(kp-H1) for a given p and k. In the tables these values of k are indicated by a star (*). (In the first manuscript these values of k were listed in a separate column and no other special mark of identification used.) The method of compu- tation by measurement permitted the listing of these values of the k's opposite the entry of the proper prime as the values were determined, the value of k being increased by 10 for each successive entry in the same column. In general this was the method employed, but for certain primes more direct methods were available. As already stated all values of k for p = 2 were omitted from the table because they are readily obtainable from the data of the prime factors given and, further, because these values would have necessi- tated a page about twice as large without adding greatly to the value of the table. It is worthy of note that the numbers of the form 2(2k+1) appear in the same column every alternate line and the successive values of k differ by 5. g Since p’=9, when p =3, if the location of 3(3k+1) is known, the number 3|3(k+1)-H1] will be found in the row below and in the next column to the left. The method for p = 3 consisted, therefore, in entering successive values of k opposite the factor 3° in the rectangle below and in the next column to the left, beginning with 3(1-3-H1) = 12 and k = 1. The first page of the scheme is shown on page VIII. For p = 5, beginning with 5(1.5-H1) = 30 and k = 1, opposite the factor 5% of every fifth line thereafter of the 0-column the odd values of k, 1, 3, 5, . . . . , were entered; and beginning with 5(2.5-i-1) = 55 and k = 2, opposite the factor 5’ of every fifth line thereafter of the 5-column, the even values of k, 2, 4, 6, . Scheme may easily be constructed. Similar methods were employed with the other primes. In each case the special device Saved labor and usually permitted of more ready checking. The general method was resorted to in as few cases as possible, because it involved more labor and the checking was more difficult. The next step consisted in entering the proper values of k after the corresponding prime factors (p →2) for all the multiples of the factors of the form p(kp-H1) already entered. These values of k were entered by measurement according to the principle that for a given p and k two successive multiples in the same line occur every pºp lines, if the final digit of p(kp-H1) is 2 or 4 or 6 or 8; every pºp1) lines, if the final digit is 0; every p(kp-H1) lines, if the final digit is 1 or 3 or 7 or 9; and every **) lines, if the final digit is 5. The first entry in all the columns is given by the first five multiples of p(kp-H1), if the final digit of p(kp-H1) is 2 or 4 or 6 or 8; by the first multiple, if the final digit is 0; by the first ten multiples, if the final digit is 1 or 3 or 7 or 9; and by the first two multiples, if the final digit is 5. For example, let p =3 and k = 1. As the final digit of 3(1-3-H1) = 12 is 2, the first entry in all of the columns are given by the first five multiples; namely, 12, 24, 36, 48, 60. Therefore, all numbers divisible by 3(1-3-H1) were found in columns 0, 2, 4, 6, 8, 3(1-3-H1) 2 After the factor 3° of each such number was placed a 1. The same process was followed for 3(2.3+1), and for all values 3(k-3-H1) such that 3(k. 3+1)-312000. Likewise, the same process was carried out in general for all values p(kp-H1) such that p(kp-H1) < 12000. In making these entries many checks were possible. The one most commonly used was that, if N = m. p(kp-H1), N was divisible by p and also by the factors of (kp-H1), the distinctive ones of which every = 6 lines from the first entry, the values given above. ., were entered. The V were easily remembered. Unless all these items checked no entry was made. Further, to prevent confusion, different colored inks were used for each class of entry. When the entries were complete, the roll was again separated into pages containing 100 numbers each. SECOND METHOD OF COMPUTATION. As the author is not acquainted with any tables which contain similar data” and which could, therefore, serve as a basis in testing out possible errors in the manuscript, it was decided to undertake a second computation of the table entirely independent of the first one and then to compare the two to obtain the final manuscript. In the Introduction to Lehmer's Factor Tables for the First Ten Millions, it is suggested that a more effective way of constructing tables of this character would be to replace the columns by as many strips laid side by side and adjustable with respect to each other. This method, modified to meet the needs of this particular table, was used in the second computation. The pages of the second manuscript were about one and one-half times as large in each dimension as those of the first one. The increased size was taken as a precaution to prevent tearing of the strips in the large amount of handling necessary. The pages were specially ruled for the table and the entries at the top of each column printed in. The prime factors of each number were entered first as in the other computation. To prevent errors in replacing the parts, in case the strips were torn or separated, the number of each rectangle was entered in red by an automatic numbering machine in the lower right-hand corner. The sheets were then glued together as before and finally cut into ten strips. Each strip was fastened at each end to a roller of approximately its own width and these rollers were in turn placed in proper order in two large round hollow tubes with a longitudinal opening which could be tightly clamped together. This arrangement permitted each strip to be adjusted separately, while, after the adjustment had once been made, the entire table could be rolled up at once as the entries in each working length were completed. *In the determination of simple groups, various authors have determined these data for brief lists of numbers. Cf. Cole, American Journal of Mathematics, vol. 14 (1892), p. 380; Ling and Miller, Ibid., vol. 22 (1900), p. 14. & VI Owing to the height of the rectangles, the loss in adjustment due to the rolling was so slight as to cause no doubt as to where to make the entry. In this computation the values of k were entered successively for each value in natural order. To designate those values for which N = p(kp-H1), the first entry for each new value of k was entered in different colored ink. The evident fact that such a value of k must be the largest value of k for a given factor p of N was used as a check in making the entry. The first ten or fewer multiples of every divi- sor, p (kp-H1), which formed a complete set of incongruent residues (mod. 10), were found and the strips were arranged so that these num- bers were in line. The strips were then clamped in this position and the values of k entered into the proper rectangles. The same entry had to be made for parallel lines of rectangles, each line º lines from the preceding one, if the final digit of p(kp-H1) was 2 or 4 or 6 or 8; pºp lines from the preceding one, if the final digit was 0; p(kp-H1) lines from the preceding one, if the final digit was 1 or 3 or 7 or 9; and pºp lines from the preceding one, if the final digit was 5. This recurrence in parallel lines afforded a check both for the prime factors and for the values of k. The process was carried through for all divisors m = p(kp-H1), where p > 2 and n < 12000. The arrangement of the strips at the beginning for n = 3(1-3-H1) is given on page IX. The second method was found to be much easier of manipulation and much more accurate. Throughout its construction, rubber numbering stamps and automatic numbering machines were used freely. Their use allowed the author to concentrate his attention on the proper place of entry and the various checks, while the correct value of the entry was assured. When the second computation was completed, the two manuscripts were carefully compared by the author and an assistant. Two readings were made. The author and his assistant read by turns, each reading a page at a time. The pages read by the author on the first reading were read by his assistant on the second. The second reading was entirely independent of the first one. On the first reading, the errors were listed on separate sheets and no correc- tions were made in the manuscripts. After the second reading, the errors found in the two readings were compared, the proper entries determined, and the corrections made. A careful comparison of the number of errors in each manuscript showed that the second method was the more effective. The total number of errors in the second manuscript was 36 per cent as many as in the first manuscript, although there was an error of only two-thirds of one per cent in the first manuscript. In this statement of errors, only the values of k were considered, as the methods for determining the prime factors of each number were essentially the same in both computations. While the main purpose of the table is to furnish data for the application of Sylow's theorem, it was found desirable to add certain other material of value.* The method, already described, of indi- cating the rank of the prime numbers by subscripts makes it possible to determine the number of primes between any two limits less than 12000. The left-hand columns of each rectangle furnish the expres- sion of all numbers less than 12000 as products of powers of primes; most tables furnish this information only for the odd numbers not divisible by 5. It is hoped that workers in Group Theory and in Number Theory will have their needs met by the combined data (within the limits set), without having to resort to larger works. APPENDICES. The construction of the table suggested many interesting problems, but none of more interest than those connected with the numbers which contain no factors of the form p(kp-H1), where p is any prime and k is any integer greater than Zero. Numbers which contain no factors of this form we will denote by P. A list of P's is given in Appendix I, arranged for readily determining their number between any two limits less than 12230. The P's have many properties in common with primes. A study of the comparative frequency of the two classes of numbers is given in Appendices II and III. Appendix II gives the enumeration of the P's and of primes by hundreds and *In compiling the extra data the following books were used: (1) Jones, Logarithmic Tables, Eleventh edition, Ithaca, N. Y. (1908). (2) Glaisher, Factor Table of the Sixth Million, Intro- duction, London (1883). (3) Lehmer, Factor Table of the First Ten Millions, Washington (1909). (4) Barlow, New Mathematical Tables, London (1814), (5) Lidonne, Tables de tous les diviseurs des nombres, Paris (1808). VII thousands in parallel columns. From this data, the approximate curves of frequency are given in Appendix III, plotted one above the other. These tables have been printed by the method used by the Carnegie Institution of Washington in the publication of certain tables recently; in particular, Professor Lehmer's Factor Tables of the First Ten Millions and List of Prime Numbers from 1 to 10,006,721. The manuscript was first typewritten in triplicate on large sheets (a page to a sheet) and the two carbon copies sent to the author. These copies were compared, entry by entry, with the original manuscripts; once with that of the first method of computation and twice with that of the second method. Both manuscripts were used to eliminate any errors which might have escaped detection in the previous comparison of the original manuscripts. The errors found by the author were corrected by pasting over them the proper entry. These sheets were then photographed on glass and reduced to about 8 by 11 inches in size. Velox proofs were then sent to the author and these were again compared with the manuscripts, once with each. After the necessary corrections had been made, the photographs were transferred to zinc plates. The zinc plates were then printed in forms of eight pages each and three copies of the proof sent to the author. These proofs were compared with the two manuscripts in the same manner as the first typewritten proofs. The same general method was pursued in reading the three distinct sets of proof. The author and his assistant read alternate pages which were so chosen that each read the entire 120 pages at least once for each set of proof, and also so that each read at least once from the proof sheets for each set. Each reading was entirely independent of any other. A list of errors for each reading was kept on filing cards (a card for each page). After the final reading, this entire list was compared with the proof to see that all errors had been corrected. As a final check, the total number of entries of the k's for each prime p and also the grand total for all the primes were deter- mined by count and these totals were then compared with the results obtained from the two computation formulae below.” *For the deriviation of these formulae, see Stager, On Numbers Which Contain. No Factors of the Form p(kp-H1), University of California Publications in Mathematics, Vol. 1, No. 1 (June, 1912), pp. 1–26. The total number of entries of all the values of k for a given prime p' is the sum [uº-p' p'2 . X 11999 |. * Lp'(kp'+1).]” where by [æ] we will denote the greatest integer in a. The total number of entries of all the values of the k's for all the odd primes is the sum k_[11999–Pi ... -ſº - 11999 2 × [ºn] v/4. 11999–1–1 2 p, is any one of the first X odd primes in the series, p1=3, p2 = 5, . . . p; . . . . . p.; the k's run independently for each p. For tables of this type, where the eacact location of each and every entry is absolutely essential for accuracy, the advantages of the photographic process are very marked. Errors due to the falling out or breaking off of type are entirely eliminated. The use of the lino- type would eliminate errors due to the dropping out of type, but a very large element of possible error would be introduced from the necessity of re-writing an entire line in correcting a single entry. The possible interchange of two lines would also present a large opportunity for €II’OI’. where p, is the largest prime not greater than and There remains for the author to acknowledge here the kind assist- ance received from many sources. He is especially indebted to the Carnegie Institution of Washington for undertaking the extended task of publication. Thanks are also especially due to Professors L. E. Dick- son of the University of Chicago, D. N. Lehmer of the University of California, and G. A. Miller of the University of Illinois for many helpful suggestions and criticisms. And finally, the author gratefully acknowledges that without the constant encouragement and able assistance of his wife in the arduous tasks of computation and com- parison of the tables, this book would not have been completed. HENRY WALTER STAGER. MAY, 1916. - VIII Scheme for p = 3 (First method of computation). 2 3 4. 5 6 7 9 O p p p 22 p : p 23 32 2 22 2 3 24 2 1. 5 p 3 1 p 7 5 p 32 p 22 3 2 23 52 2 33 22 2 5 7 11 p 3 13 7 p 2 p 25 3 2 5 22 2 3 4 3 ; 11 17 7 32 p 19 13 23 p ; p 22 32 2 p 24 72 4. 5 7 11 5 23 3 2 3 22 p 2 5 23 3 6 2 5 52 17 13 33 11 7 19 29 p * 22 2 32 26 5 2 22 3 6 || 3 p 31 7 3 7 p 5 13 11 17 23 7 : p 23 p 2 3 8 22 7 2 p 7 32 37 52 19 11 3 13 24 34 2 22 p 5 2 3 23 8 5 41 ; 9 17 43 29 11 p 2 7 22 3 10 2 5 25 2 32 2 3 9 5 13 23 31 47 19 3 p 72 11 First page, showing the entries for p=3, when N =3(3k+1). IX Scheme for n=3 (1.3+1), showing first line of entries (Second method of computation). 1. O p 0 1 2 1 | 5 p 10 11 22 3 23 32 2 5 7 T-------. — — — — — - – ---------...--——---~~~" T ~ T & T ~ * ~ Tºrr 6 20 21 8 9 2 - 2 2 3 3 p 3 p 32 p 5 30 31 6 7 18 19 23 p 22 p 24 ſp 22 p 4. 5 7 2 40 - 41 4 5 16 17 28 29 2 3 2 3 2 33 2 3 5 52 17 p 7 5 13 19 13 50 51 2 3 14 15 26 27 38 39 22 p 22 23 52 22 p 24 72 6 3 1 3 1? 3 32 1 3 . 5 *. 60 61 12 13 24 25 36 37 48 49 As n is an even number in this case, note that the value of k, k = 1, appears only in the even columns. To save labor, each odd column is adjusted the same as the preceding even column. The p indicates that the number is a prime. The number in the lower right-hand corner of each rectangle is the number of the rectangle and was necessary in this method to avoid errors in adjusting the strips or in case a strip should separate or be torn. They were entered in red in the original to prevent confusion. A P P E N D I C E S. APPENDIX I. List of P's.” In pages XI and XII is given a list of P's from 1 to 12229 in their natural order and arranged for the ready computation of the number of P's between any two limits less than 12230. The columns are numbered consecutively from 1 to the last column of the list in the first line at the top of the pages and the rows are numbered from 1 to 50 in the first column on the left-hand side of each page. The last three digits of the P's are given in the columns and the remaining digits are found in the proper column and in the second line at the top of each page. In case the entry for any P is in heavy type, the other digits for the remaining P's in that column are found at the top of the next column to the right. Thus, the P at the intersection of column 35 and row 43 is 5127. APPENDIX II. Enumerations of P's and Primes. The right-hand column of this page gives in adjacent columns the number of primes and the number of P's for each hundred and each thou- Sand within the limits of the table. The enumerations for the primes were taken from data given in the Introduction to Glaisher's Factor Table of the Sixth Million. The results for the P's were obtained by actual count from the List of P's in Appendix I. The arrangement of the enumerations needs no explanation. APPENDIX III. Approacimate Curves of Frequency. The data given in the enumerations of Appendix II has been employed to plot (Plate 1) the number of primes and of P's by hundreds. The abscissae give the number of the hundred and the ordinates give the number of the primes, or of the P's, in the hundred. The curve AA’ is for the primes and the curve BB' for the P's. The two curves represent approximately the frequency of the primes and of the P's respectively. *I am indebted to Professor D. N. Lehmer for the method of listing the P's, which is similar to the arrangement used by him in his List of Prime Numbers from 1 to 10,006,721, Washington (1914) X - Number of Primes and P's for Each Hundred and for Each Thousand. 0–3999 Hun- e y Hun- g y Hun- i º y Hun- | . . . p dred Primes | P’s dred Primes i P's dred Primes P’s dred Primes P’s 1f 26 49 11 | 16 32 21 14 33 31 12 34 2 21 40 12 12 35 22 10 31 32 10 33 3 16 37 13 15 35 23 15 34 33 11 31 4 . 16 34 14 11 36 24 15 34 34 15 33 5 17 37 15 17 32 25 10 34 35 11 . 30 6 14 38 16 12 35 26 11 35 36 14 34 7 16 34 17 15 35 27 15 30 37 13 33 8 14 36 18 12 33 28 14 33 38 12 33 9 15 36 19 12 33 29 12 37 39 11 32 10 14 33 20 13 36 30 11 31 40 11 33 169 374 135 342 127 332 120 326 4000–7999 Hun- e y Hun- :--~~~~ y Hun- g y Hun- e y dred Primes | P’s dred Primes P’s dred Primes P’s dred Primes P’s 41 15 33 51 12 33 61 12 29 71 9 33 42 9 34 52 11 31 62 11 36 72 10 34 43 16 35 53 10 28 63 13 33 73 11 34 44 9 31 54 10 35 64 .15 30 74 9 33 45 11 33 55 13 30 65 8 35 75 11 32 46 12 33 56 13 32 66 11 30 76 15 24 47 12 32 57 12 32 67 10 31 77 12 32 48 12 31 58 10 31 68 12 31 78 10 33 49 8 33 59 16 33 69 12 33 79 10 31 50 15 33 60 7 33 70 13 31 80 10 34 119 328 114 318 117 319 107 320 8000–11999 | Hun- º y Hun- g | y Hun- º 9 Hun- gº 9 dred Primes | P's dred Primes P’s dred Primes | P’s dred Primes | P’s 81 11 35 || 91 11 31 || 101 11 31 || 111 10 36 82 10 31 92 12 33 102 12 28 112 11 27 83 14 30 93 11 32 103 10 28 113 10 31 84 9 34 94 11 30 104 12 33 114 10 35 85 8 32 95 15 31 105 10 31 115 11 33 86 12 35 96 7 : 31 106 || 8 31 116 9 32 87 13 31 97 13 29 107 12 35 117 8 31 88 11 32 98 11 32 108 11 31 118 9 32 89 13 32 99 12 32 109 10 28 119 12 30 90 9 32 100 9 35 110 10 31 120 13 30 110 || 324 112 316 106 || 307 103 || 317 fThe first hundred, 0–99, includes 1 as a prime and as a P. 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