Faculty of Natural Sciences and Mathematics
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Item type:Publication, Проучување на хемискиот состав на Foeniculum vulgare од Македонија со примена на хроматографски методи(Ss. Cyril and Methodius University in Skopje, 2016-04-15)Менче Најдоска-Богданов - Some of the metrics are blocked by yourconsent settings
Item type:Publication, PROPRETIES OF THE K-TH UPPER ORDER STATISTICS PROCESS THROUGH AN EXAMPLE(Union of Mathematicians of Macedonia, 2019)Aneta Gacovska-BarandovskaThe author has previously considered the asymptotic be havior of upper order statistics with central rank of a sample with deterministic size and of randomly indexed upper order statistics. In this paper, by using regular norming time-space changes, a theoretical example has been constructed in order to illustrate some of the ob tained properties of the k-th upper order statistics process. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, On limit laws for central order statistics under power normalization(Bulgarian Academy of Sciences, Institute of Mathematics and Informatics, 2015)Elisaveta I. Pancheva, Aneta Gacovska-BarandovskaSmirnov (1949) derived four limit classes of distributions for linearly normalized central order statistics. In this paper we investigate the possible limit distributions of the k-th upper order statistics with central rank using regular power norming sequences and obtain twelve limit classes. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Fungal Planet description sheets: 868–950(Naturalis Biodiversity Center, 2019-07-19) ;Crous, P.W. ;Carnegie, A.J. ;Wingfield, M.J. ;Sharma, R.Mughini, G.<jats:p>Novel species of fungi described in this study include those from various countries as follows: <jats:bold>Australia</jats:bold>, <jats:italic>Chaetomella pseudocircinoseta</jats:italic> and <jats:italic>Coniella pseudodiospyri</jats:italic> on <jats:italic>Eucalyptus microcorys</jats:italic> leaves, <jats:italic>Cladophialophora eucalypti</jats:italic>, <jats:italic>Teratosphaeria dunnii</jats:italic> and <jats:italic>Vermiculariopsiella dunnii</jats:italic> on <jats:italic>Eucalyptus dunnii</jats:italic> leaves, <jats:italic>Cylindrium grande</jats:italic> and <jats:italic>Hypsotheca eucalyptorum</jats:italic> on <jats:italic>Eucalyptus grandis</jats:italic> leaves, <jats:italic>Elsinoe salignae</jats:italic> on <jats:italic>Eucalyptus saligna</jats:italic> leaves, <jats:italic>Marasmius lebeliae</jats:italic> on litter of regenerating subtropical rainforest, <jats:italic>Phialoseptomonium eucalypti</jats:italic> (incl. <jats:italic>Phialoseptomonium</jats:italic> gen. nov.) on <jats:italic>Eucalyptus grandis</jats:italic> × <jats:italic>camaldulensis</jats:italic> leaves, <jats:italic>Phlogicylindrium pawpawense</jats:italic> on <jats:italic>Eucalyptus tereticornis</jats:italic> leaves, <jats:italic>Phyllosticta longicauda</jats:italic> as an endophyte from healthy <jats:italic>Eustrephus latifolius</jats:italic> leaves, <jats:italic>Pseudosydowia eucalyptorum</jats:italic> on <jats:italic>Eucalyptus</jats:italic> sp. leaves, <jats:italic>Saitozyma wallum</jats:italic> on <jats:italic>Banksia aemula</jats:italic> leaves, <jats:italic>Teratosphaeria henryi</jats:italic> on <jats:italic>Corymbia henryi</jats:italic> leaves. <jats:bold>Brazil</jats:bold>, <jats:italic>Aspergillus bezerrae</jats:italic>, <jats:italic>Backusella azygospora</jats:italic>, <jats:italic>Mariannaea terricola</jats:italic> and <jats:italic>Talaromyces pernambucoensis</jats:italic> from soil, <jats:italic>Calonectria matogrossensis</jats:italic> on <jats:italic>Eucalyptus urophylla</jats:italic> leaves, <jats:italic>Calvatia brasiliensis</jats:italic> on soil, <jats:italic>Carcinomyces nordestinensis</jats:italic> on <jats:italic>Bromelia antiacantha</jats:italic> leaves, <jats:italic>Dendryphiella stromaticola</jats:italic> on small branches of an unidentified plant, <jats:italic>Nigrospora brasiliensis</jats:italic> on <jats:italic>Nopalea cochenillifera</jats:italic> leaves, <jats:italic>Penicillium alagoense</jats:italic> as a leaf endophyte on a <jats:italic>Miconia</jats:italic> sp., <jats:italic>Podosordaria nigrobrunnea</jats:italic> on dung, <jats:italic>Spegazzinia bromeliacearum</jats:italic> as a leaf endophyte on <jats:italic>Tilandsia catimbauensis</jats:italic>, <jats:italic>Xylobolus brasiliensis</jats:italic> on decaying wood. <jats:bold>Bulgaria</jats:bold>, <jats:italic>Kazachstania molopis</jats:italic> from the gut of the beetle <jats:italic>Molops piceus</jats:italic>. <jats:bold>Croatia</jats:bold>, <jats:italic>Mollisia endocrystallina</jats:italic> from a fallen decorticated <jats:italic>Picea abies</jats:italic> tree trunk. <jats:bold>Ecuador</jats:bold>, <jats:italic>Hygrocybe rodomaculata</jats:italic> on soil. <jats:bold>Hungary</jats:bold>, <jats:italic>Alfoldia vorosii</jats:italic> (incl.<jats:italic>Alfoldia</jats:italic> gen. nov.) from <jats:italic>Juniperus communis</jats:italic> roots, <jats:italic>Kiskunsagia ubrizsyi</jats:italic> (incl. <jats:italic>Kiskunsagia</jats:italic> gen. nov.) from <jats:italic>Fumana procumbens</jats:italic> roots. <jats:bold>India</jats:bold>, <jats:italic>Aureobasidium tremulum</jats:italic> as laboratory contaminant, <jats:italic>Leucosporidium himalayensis</jats:italic> and <jats:italic>Naganishia indica</jats:italic> from windblown dust on glaciers. <jats:bold>Italy</jats:bold>, <jats:italic>Neodevriesia cycadicola</jats:italic> on <jats:italic>Cycas</jats:italic> sp. leaves, <jats:italic>Pseudocercospora pseudomyrticola</jats:italic> on <jats:italic>Myrtus communis</jats:italic> leaves, <jats:italic>Ramularia pistaciae</jats:italic> on <jats:italic>Pistacia lentiscus</jats:italic> leaves, <jats:italic>Neognomoniopsis quercina</jats:italic> (incl. <jats:italic>Neognomoniopsis</jats:italic> gen. nov.) on <jats:italic>Quercus ilex</jats:italic> leaves. <jats:bold>Japan</jats:bold>, <jats:italic>Diaporthe fructicola</jats:italic> on <jats:italic>Passiflora edulis</jats:italic> × <jats:italic>P</jats:italic>. <jats:italic>edulis</jats:italic> f. <jats:italic>flavicarpa</jats:italic> fruit, <jats:italic>Entoloma nipponicum</jats:italic> on leaf litter in a mixed <jats:italic>Cryptomeria japonica</jats:italic> and <jats:italic>Acer</jats:italic> spp. forest. <jats:bold>Macedonia</jats:bold>, <jats:italic>Astraeus macedonicus</jats:italic> on soil. <jats:bold>Malaysia</jats:bold>, <jats:italic>Fusicladium eucalyptigenum</jats:italic> on <jats:italic>Eucalyptus</jats:italic> sp. twigs, <jats:italic>Neoacrodontiella eucalypti</jats:italic> (incl. <jats:italic>Neoacrodontiella</jats:italic> gen. nov.) on <jats:italic>Eucalyptus urophylla</jats:italic> leaves. <jats:bold>Mozambique</jats:bold>, <jats:italic>Meliola gorongosensis</jats:italic> on dead <jats:italic>Philenoptera violacea</jats:italic> leaflets. <jats:bold>Nepal</jats:bold>, <jats:italic>Coniochaeta dendrobiicola</jats:italic> from <jats:italic>Dendriobium lognicornu</jats:italic> roots. <jats:bold>New Zealand</jats:bold>, <jats:italic>Neodevriesia sexualis</jats:italic> and <jats:italic>Thozetella neonivea</jats:italic> on <jats:italic>Archontophoenix cunninghamiana</jats:italic> leaves. <jats:bold>Norway</jats:bold>, <jats:italic>Calophoma sandfjordenica</jats:italic> from a piece of board on a rocky shoreline, <jats:italic>Clavaria parvispora</jats:italic> on soil, <jats:italic>Didymella finnmarkica</jats:italic> from a piece of <jats:italic>Pinus sylvestris</jats:italic> driftwood. <jats:bold>Poland</jats:bold>, <jats:italic>Sugiyamaella trypani</jats:italic> from soil. <jats:bold>Portugal</jats:bold>, <jats:italic>Colletotrichum feijoicola</jats:italic> from <jats:italic>Acca sellowiana.</jats:italic> <jats:bold>Russia</jats:bold>, <jats:italic>Crepidotus tobolensis</jats:italic> on <jats:italic>Populus tremula</jats:italic> debris, <jats:italic>Entoloma ekaterinae</jats:italic>, <jats:italic>Entoloma erhardii</jats:italic> and <jats:italic>Suillus gastroflavus</jats:italic> on soil, <jats:italic>Nakazawaea ambrosiae</jats:italic> from the galleries of <jats:italic>Ips typographus</jats:italic> under the bark of <jats:italic>Picea abies.</jats:italic> <jats:bold>Slovenia</jats:bold>, <jats:italic>Pluteus ludwigii</jats:italic> on twigs of broadleaved trees. <jats:bold>South Africa</jats:bold>, <jats:italic>Anungitiomyces stellenboschiensis</jats:italic> (incl. <jats:italic>Anungitiomyces</jats:italic> gen. nov.) and <jats:italic>Niesslia stellenboschiana</jats:italic> on <jats:italic>Eucalyptus</jats:italic> sp. leaves, <jats:italic>Beltraniella pseudoportoricensis</jats:italic> on <jats:italic>Podocarpus falcatus</jats:italic> leaf litter, <jats:italic>Corynespora encephalarti</jats:italic> on <jats:italic>Encephalartos</jats:italic> sp. leaves, <jats:italic>Cytospora pavettae</jats:italic> on <jats:italic>Pavetta revoluta</jats:italic> leaves, <jats:italic>Helminthosporium erythrinicola</jats:italic> on <jats:italic>Erythrina humeana</jats:italic> leaves, <jats:italic>Helminthosporium syzygii</jats:italic> on a <jats:italic>Syzygium</jats:italic> sp. barkcanker, <jats:italic>Libertasomyces aloeticus</jats:italic> on <jats:italic>Aloe</jats:italic> sp. leaves, <jats:italic>Penicillium lunae</jats:italic> from <jats:italic>Musa</jats:italic> sp. fruit, <jats:italic>Phyllosticta lauridiae</jats:italic> on <jats:italic>Lauridia tetragona</jats:italic> leaves, <jats:italic>Pseudotruncatella bolusanthi</jats:italic> (incl. <jats:italic>Pseudotruncatellaceae</jats:italic> fam. nov.) and <jats:italic>Dactylella bolusanthi</jats:italic> on <jats:italic>Bolusanthus speciosus</jats:italic> leaves. <jats:bold>Spain</jats:bold>, <jats:italic>Apenidiella foetida</jats:italic> on submerged plant debris, <jats:italic>Inocybe grammatoides</jats:italic> on <jats:italic>Quercus ilex</jats:italic> subsp. <jats:italic>ilex</jats:italic> forest humus, <jats:italic>Ossicaulis salomii</jats:italic> on soil, <jats:italic>Phialemonium guarroi</jats:italic> from soil. <jats:bold>Thailand</jats:bold>, <jats:italic>Pantospora chromolaenae</jats:italic> on <jats:italic>Chromolaena odorata</jats:italic> leaves. <jats:bold>Ukraine</jats:bold>, <jats:italic>Cadophora helianthi</jats:italic> from <jats:italic>Helianthus annuus</jats:italic> stems. <jats:bold>USA</jats:bold>, <jats:italic>Boletus pseudopinophilus</jats:italic> on soil under slash pine, <jats:italic>Botryotrichum foricae</jats:italic>, <jats:italic>Penicillium americanum</jats:italic> and <jats:italic>Penicillium minnesotense</jats:italic> from air. <jats:bold>Vietnam</jats:bold>, <jats:italic>Lycoperdon vietnamense</jats:italic> on soil. Morphological and culture characteristics are supported by DNA barcodes.</jats:p> - Some of the metrics are blocked by yourconsent settings
Item type:Publication, ПРОФ. Д-Р БЛАГОЈА МАРКОСКИ (ПО ПОВОД ШЕЕСЕТ ГОДИНИ ОД ЖИВОТОТ)(Macedonian Geographical Society, 2019)ГОРИН, Свемир - Some of the metrics are blocked by yourconsent settings
Item type:Publication, UV dust attenuation as a function of stellar mass and its evolution with redshift(Soci´et´e Francaise d’Astronomie et d’Astrophysique (SF2A) 2019, 2019-12); Denis BurgarellaDescribing the Universe in its early stages requires obtaining knowledge about the various components in distant galaxies (stars, gas, dust). This work aims to further constrain the relationship between the ultraviolet dust attenuation and stellar mass, as well as the evolution of the dust attenuation with redshift, by creating a three dimensional model for the dust attenuation, which uses these two galactic parameters (redshift and stellar mass). By combining data from different literature sources, we were able to compile a data set comprised of estimates of photometric redshift, stellar mass and dust attenuation calculated by the infrared excess (IRX) method, i.e. by converting the ratio of the infrared-to-ultraviolet luminosity of galaxies to ultraviolet dust attenuation. Using this result, we will be able to model and predict what the emission of galaxies at high redshifts is. This information will be useful to understand and interpret the data that the ELT will collect, especially the first imaging instruments MICADO and METIS. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Едукација за заштита од земјотрес – придобивка за во иднина(2019)Катерина Дрогрешка, Драгана Черних, Јасмина Најдовска - Some of the metrics are blocked by yourconsent settings
Item type:Publication, СЕИЗМИЧНОСТ НА ПЕЛАГОНИСКИ ХОРСТ─АНТИКЛИНОРИУМ ЗА ПЕРИОДОТ ОД 1970-2018(2019)Катерина Дрогрешка, Јасмина Најдовска, Драгана Черних─Анастасовска - Some of the metrics are blocked by yourconsent settings
Item type:Publication, SERIES OF EARTHQUAKES IN THE VLANDOVO EPICENTRAL AREA, MAY – JUNE 2009(Institute of Knowledge Management, 2019); ;Drogreshka, KaterinaChernih, Dragana<jats:p>Seismic activity occurred in the Valandovo epicentral area was manifested through a series of weak to moderate earthquakes from May to June 2009. During this period more than a 2000 earthquakes were recorded by the telemetric seismological network of the Republic of Macedonia (SORM) and seismological stations from neighboring countries. Many of these earthquakes were felt on the territory of the Republic of Macedonia, Greece and Bulgaria. The strongest earthquake, with local Richter magnitude ML=5.1 and epicentral intensity Io=VII EMS-1998 scale, was on May 24, 2009, at UTC 16h 17min. According to all instrumental data, our latest investigation of seismic activity parameters for this epicentral area pointed out the activity of Valandovo fault and focal parameters were determined.</jats:p>
